Noisy quantum phase transitions: an intuitive approach
arXiv:1205.3496 · doi:10.1088/0031-8949/2012/T151/014026
Abstract
Equilibrium thermal noise is known to destroy any quantum phase transition. What are the effects of non-equilibrium noise? In two recent papers we have considered the specific case of a resistively-shunted Josephson junction driven by charge noise. At equilibrium, this system undergoes a sharp quantum phase transition at a critical value of the shunt resistance. By applying a real-time renormalization group (RG) approach, we found that the noise has three main effects: It shifts the phase transition, renormalizes the resistance, and generates an effective temperature. In this paper we explain how to understand these effects using simpler arguments, based on Kirchhoff laws and time-dependent perturbation theory. We also show how these effects modify physical observables and especially the current-voltage characteristic of the junction. In the appendix we describe two possible realizations of the model with ultracold atoms confined to one dimension.
8 pages, 7 figures. Published version
References in corpus (6)
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- Quantum phase transition in a far from equilibrium steady state of XY spin chain
- Nonequilibrium quantum criticality in open electronic systems
- Two-point phase correlations of a one-dimensional bosonic Josephson junction
- Theory of defect production in nonlinear quench across a quantum critical point
- Current driven quantum criticality in itinerant electron ferromagnets